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Sleeping
import joblib | |
import streamlit as st | |
import numpy as np | |
# Load the trained model | |
model = joblib.load("src/student_performance_model (2).h5") | |
def predict_marks(Hours_studied, Previous_Score, Extracurriculum_Activivities, Sleep_Hours, Sample_Question): | |
"Predict the student marks based on the input data" | |
input_data = np.array([[Hours_studied, Previous_Score, Extracurriculum_Activivities, Sleep_Hours, Sample_Question]]) | |
prediction = model.predict(input_data) | |
prediction = round(float(prediction), 2) | |
# Ensure the prediction does not exceed 100 | |
if prediction > 100: | |
prediction = 100 | |
return prediction | |
def main(): | |
# Sidebar Welcome Note with Emojis | |
st.title("๐ Student Marks Predictor ๐") | |
# Input data | |
name = st.text_input("๐ค Enter your name") | |
Hours_studied = st.number_input("๐ Hours you studied", min_value=0.0, max_value=20.0, value=0.0) | |
Previous_Score = st.number_input("๐ Previous exam score", min_value=0, max_value=100, value=0) | |
Extracurriculum_Activivities = st.number_input("๐ญ Extracurricular activities done", min_value=0, max_value=10, value=0) | |
Sleep_Hours = st.number_input("๐ด Hours you slept", min_value=0.0, max_value=12.0, value=0.0) | |
Sample_Question = st.number_input("โ๏ธ Sample questions practiced", min_value=0, max_value=50, value=0) | |
# Sidebar interaction | |
st.sidebar.title(f" # Hey {name}") | |
st.sidebar.title(f"๐Welcome to your Marks Predictor! ๐") | |
st.sidebar.write(""" | |
Hey there! Ready to see what your future marks might be? ๐ | |
Remember, I'm here to help you succeed! ๐ช | |
""") | |
st.sidebar.markdown("---") | |
# Predict button | |
if st.button("๐ฎ Predict Your Marks"): | |
prediction = predict_marks(Hours_studied, Previous_Score, Extracurriculum_Activivities, Sleep_Hours, Sample_Question) | |
# Display the predictions | |
if prediction >= 90: | |
st.balloons() | |
st.success(f"๐ **{name}, amazing!** You're on track to score {prediction} marks! Keep up the excellent work! ๐ช") | |
elif prediction >= 35: | |
st.warning(f"โ ๏ธ **{name}, not bad!** You're likely to pass with {prediction} marks, but there's room to aim higher! ๐") | |
else: | |
st.error(f"๐จ **{name}, oh no!** You might score below 35 marks. Consider putting in some more effort! ๐") | |
if __name__ == "__main__": | |
main() |